Virtual Vernier Effect-Enabled Parallel Dual-Cavity Sensor for Temperature and Humidity Synchronization

游标尺 干扰(通信) 灵敏度(控制系统) 计算机科学 湿度 温度测量 干涉测量 电子工程 遥感 灵活性(工程) 流离失所(心理学) 调制(音乐) 同步(交流) 天文干涉仪 观测误差 过程(计算) 加速度计 声学 实时计算 虚拟仪器 准确度和精密度 材料科学 虚拟仪器 光学 多路复用 环境科学
作者
Yuting Li,Xiaoguang Mu,Yuqiang Yang,Xia Han,Y.P. Zhang,Chengyu Mo,Zhihao Huang,Yitong Li,Fengda Li
出处
期刊:Nanomaterials [Multidisciplinary Digital Publishing Institute]
卷期号:15 (18): 1427-1427
标识
DOI:10.3390/nano15181427
摘要

This paper presents a high-sensitivity temperature and humidity synchronous measurement sensor based on virtual Vernier demodulation, designed to overcome the limitations of traditional sensors in high-sensitivity and synchronous measurements. By combining a dual-cavity parallel structure with the Virtual Vernier effect (VVE), two interferometers were designed, with one using a temperature-sensitive material (polydimethylsiloxane, PDMS) and the other using a humidity-sensitive material (polyvinyl alcohol, PVA) for temperature and humidity measurement, respectively. Based on actual interference spectra, a modulation function was used to generate the virtual reference interferometer spectrum, which was then superimposed with the sensing interferometer's spectrum to form a virtual Vernier envelope. By monitoring the displacement of the envelope, precise measurements of temperature and humidity changes were achieved. Experimental results showed a temperature sensitivity of 5.61 nm/°C and 7.62 nm/°C, a humidity sensitivity of 0 nm/%RH and -3.07 nm/%RH, and average errors of 0.64% and 1.10% for temperature and humidity, respectively, demonstrating the feasibility of the method. The introduction of the virtual interferometer effectively reduces environmental interference with the measurement results and avoids the material loss and errors associated with traditional reference interferometers. More importantly, the VVE enables dynamic adjustment of the envelope magnification, thereby enhancing the sensor's flexibility and overcoming the structural limitations of traditional interferometers. This sensor provides efficient and reliable technological support for future environmental monitoring and climate change research.
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